DocumentCode :
1272
Title :
Low Power Nonlinear Active Devices Based on Intrinsic Metal Nonlinearities
Author :
Rahmati, Azadeh Taher ; Granpayeh, N.
Author_Institution :
Fac. of Electr. Eng., K.N. Toosi Univ. of Technol., Tehran, Iran
Volume :
32
Issue :
21
fYear :
2014
fDate :
Nov.1, 1 2014
Firstpage :
4004
Lastpage :
4010
Abstract :
In this paper, we report a novel low-power nonlinear plasmonic nanoswitch mainly based on optical nonlinearity of centro-symmetric metals. We consider metal nonlinear terms including electrical and magnetic parts of Lorentz force and convective effect, due to the free electron mobility and Lorentz oscillator for bound electrons. We use hydrodynamic model for free electrons of metal to describe nonlinear terms that play more significant role in the second and third harmonic generation processes. We study the impact of each individual term. Our simulation results show that the convective term is much more effective than the others. We simulate the second harmonic generation of 2-D nanopillar and plasmonic switch by the 2-D finite difference time domain method. The required powers for exciting the intrinsic metal nonlinearities due to the free and bound electrons are less than those of other kinds of nonlinearities such as Kerr effect in dielectrics. In our nanoswitch, fundamental frequency as a pump signal controls each output ports and switching performance.
Keywords :
dielectric materials; finite difference time-domain analysis; nanophotonics; optical Kerr effect; optical harmonic generation; optical materials; optical pumping; optical switches; plasmonics; 2-D finite difference time domain method; 2-D nanopillar; Kerr effect; Lorentz force; Lorentz oscillator; bound electrons; centro-symmetric metals; convective effect; convective term; dielectrics; electrical parts; free electron mobility; fundamental frequency; hydrodynamic model; intrinsic metal nonlinearities; low power nonlinear active devices; low-power nonlinear plasmonic nanoswitch; magnetic parts; metal free electrons; metal nonlinear terms; optical nonlinearity; output ports; pump signal; second harmonic generation processes; switching performance; third harmonic generation processes; Dielectrics; Electric fields; Frequency conversion; Harmonic analysis; Metals; Plasmons; Switches; Hydrodynamics; metal nonlinear effects; nanostructures; nonlinear optical devices; optical harmonic generation;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/JLT.2014.2344018
Filename :
6867283
Link To Document :
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